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Nishihara, Y.

Publications and source records attributed to Nishihara, Y..

2 recordsLinked to original sources

High pressure inhibits signaling protein binding to the flagellar motor and bacterial chemotaxis through enhanced hydration

In the chemotaxis of Escherichia coli, the cells behavioral switch involves binding of the phosphorylated form of the chemotaxis signaling protein CheY (CheYp) to the flagellar motor protein FliM, which induces the motor to rotate clockwise; otherwise, the motor rotates counterclockwise. To investigate high-pressure effects on CheYp-FliM binding at atomic resolution, we conduct molecular dynamics simulations of monomeric CheYp, the N-terminal fragment of the FliM (FliMN) that binds to CheYp, and the complex that forms between those proteins at pressures ranging from 0.1 to 100 MPa. The results show that the active form of monomeric CheYp is maintained even at 100 MPa but high pressure increases the water density in the first hydration shell and can cause conformational change of the C-terminal helix. The dissociation process of the complex is investigated by parallel cascade selection molecular dynamics (PaCS-MD), revealing that high pressure considerably induces water penetration into the complex interface. Pressure dependence of standard binding free energy calculated by the Markov state model indicates that the increase of pressure from 0.1 to 100 MPa weakens the binding by [~] 10 kcal/mol. Using high-pressure microscopy, we observed that high hydrostatic pressure reversibly fixes the motor rotation in the counter-clockwise orientation, which supports the notion that high pressure inhibits the binding of CheYp to FliM. We conclude that high pressure induces water penetration into the complex interface, which interferes with CheYp-FliM binding and prevents motor reversal.

biophysics

Pan-GWAS of Streptococcus agalactiae highlights lineage specific genes associated with virulence and niche adaptation

Streptococcus agalactiae (Group B streptococcus, GBS) is a coloniser of the gastrointestinal and urogenital tracts, and an opportunistic pathogen of infants and adults. The worldwide population of GBS is characterised by Clonal Complexes (CCs) with different invasive potentials. CC17 for example, is a hypervirulent lineage commonly associated with neonatal sepsis and meningitis, while CC1 is less invasive in neonates and more commonly causes invasive disease in adults with co-morbidities. The genetic basis of GBS virulence and to what extent different CCs have adapted to different host environments remain uncertain. We have therefore applied a pan-genome wide association study approach to 1988 GBS strains isolated from different hosts and countries. Our analysis identified 279 CC-specific genes associated with virulence, disease, metabolism and regulation of cellular mechanisms that may explain the differential virulence potential of particular CCs. In CC17 and CC23 for example, we have identified genes encoding for pilus, quorum sensing proteins, and proteins for the uptake of ions and micronutrients which are absent in less invasive lineages. Moreover, in CC17, carriage and disease strains were distinguished by the allelic variants of 21 of these CC-specific genes. Together our data highlight the lineage-specific basis of GBS niche adaptation and virulence, and suggest that human-associated GBS CCs have largely evolved in animal hosts before crossing to the humans and then spreading clonally.

genomics